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Single-Molecule Fluorescence Visualization of DNA Polymerase Dynamics at G-Quadruplexes
Published on: April 4, 2025
Stabilization of G-Quadruplexes Modulates the Expression of DNA Damage and Unfolded Protein Response Genes in Canine
Beatriz Hernández-Suárez1,2, David A Gillespie3, Ewa Dejnaka1
1Department of Pharmacology and Toxicology, Faculty of Veterinary Medicine, Wroclaw University of Environmental and Life Sciences, 50-375 Wroclaw, Poland.
Abstract:
G-quadruplexes have been identified as a promising anti-cancer target because of their ability to modulate the stability of mRNAs encoding oncogenes, tumor suppressor genes, and other potential therapeutic targets. Deregulation of DNA damage and Unfolded Protein Response pathways in cancer cells may create vulnerabilities that can be exploited therapeutically. Previous studies have shown variations in the relative expression of DDR and UPR components in canine lymphoma and leukemia cell lines CLBL-1, CLB70, and GL-1. In the present study, we report the presence of G-quadruplex structures in these canine cell lines. Downregulation of the expression of DDR and UPR components at the mRNA level was observed in the CLBL-1 and CLB70 cell lines after stabilization of G4 structures using the ligand PhenDC3. In contrast, in GL-1 cells, important components of the DDR pathway, such as PARP1, GADD45A, and PIK3CB were upregulated in response to PhenDC3 treatment. Downregulation of DDIT4 mRNA expression, which encodes an important UPR component, was detected in the CLBL-1 and GL-1 cell lines after PhenDC3 exposure. These results suggest that G4 structures can be used to manipulate the expression of potential targets to treat lymphoma in dogs. A substantial enrichment of DNA replication and pyrimidine metabolism pathways was found in the GL-1 cell line after G4 stabilization. This finding suggests that PhenDC3 may induce DNA replication stress in this cell line. Collectively, these results support the feasibility of employing canine cancer cells as a model system to investigate the role of G-quadruplex structures in cancer.
Insights
G-quadruplexes show potential as anti-cancer targets in canine lymphoma. Stabilizing these structures with PhenDC3 altered DNA damage and Unfolded Protein Response pathways differently across cell lines, suggesting therapeutic possibilities.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- G-quadruplexes (G4) are emerging anti-cancer targets due to their role in regulating gene expression.
- Cancer cells exhibit dysregulated DNA damage (DDR) and Unfolded Protein Response (UPR) pathways.
- Canine lymphoma cell lines (CLBL-1, CLB70, GL-1) show variable DDR and UPR component expression.
Purpose of the Study:
- To investigate the presence of G-quadruplex structures in canine lymphoma and leukemia cell lines.
- To determine the effect of G4 stabilization on DDR and UPR pathways in these cells.
- To evaluate canine cancer cells as a model for G4-based cancer research.
Main Methods:
- Detection of G-quadruplex structures in canine cell lines.
- Treatment with the G4-stabilizing ligand PhenDC3.
- Analysis of mRNA expression levels of DDR and UPR components (e.g., PARP1, GADD45A, PIK3CB, DDIT4).
- Pathway enrichment analysis.
Main Results:
- PhenDC3 treatment downregulated DDR and UPR components in CLBL-1 and CLB70 cells.
- In GL-1 cells, PhenDC3 upregulated DDR components (PARP1, GADD45A, PIK3CB) and downregulated DDIT4 (UPR).
- PhenDC3 induced DNA replication stress in GL-1 cells, indicated by pathway enrichment.
Conclusions:
- G-quadruplex structures can be modulated to influence therapeutic targets in canine lymphoma.
- Canine cancer cell lines serve as a viable model for studying G-quadruplex roles in cancer.
- Targeting G4 structures offers a potential therapeutic strategy for canine lymphoma.
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